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I have mysql data base in which i am adding data in mysql data base but problem is that it only stores only one record not more than that.

my table structure is

    <?php
    $con =  mysql_connect("example.com","name","password");

    if (!$con)
     {
     die('Could not connect: ' . mysql_error());
     }

     mysql_select_db("surveyipad", $con);

     $response_id=$_POST['response_id'];

     $participant_id=$_POST['participant_id'];


     $question_id=$_POST['question_id'];



     $answer_text=$_POST['answer_text'];


     $answer_option=$_POST['answer_option'];


     $query=("INSERT INTO survey_question_responses (response_id,participant_id,question_id,answer_text,answer_option)

      VALUES ('', '$participant_id','$question_id','$answer_text','$answer_option')");

       mysql_query($query,$con);
       printf("Records inserted: %d\n", mysql_affected_rows());

     echo($response_id)
   ?>

response id is primary key in table and also set to auto increment

share|improve this question
    
Could you change "mysql_query($query,$con)" to "mysql_query($query,$con) or die(mysql_error())" and tell us what error you see? –  Wayne Whitty Aug 28 '12 at 8:49
1  
Your code is vulnerable to SQL injection. You really should be using prepared statements, into which you pass your variables as parameters that do not get evaluated for SQL. If you don't know what I'm talking about, or how to fix it, read the story of Bobby Tables. –  eggyal Aug 28 '12 at 8:49
    
Also, as stated in the introduction to the PHP manual chapter on the mysql_* functions: This extension is not recommended for writing new code. Instead, either the mysqli or PDO_MySQL extension should be used. See also the MySQL API Overview for further help while choosing a MySQL API. –  eggyal Aug 28 '12 at 8:50
    
there is no any error in code i thins if it error then how it is inserting one record –  user1619187 Aug 28 '12 at 8:50
    
What value does response_id have in your first row? –  Wayne Whitty Aug 28 '12 at 8:51

2 Answers 2

up vote 0 down vote accepted

Try like this

$query=("INSERT INTO survey_question_responses (participant_id,question_id,answer_text,answer_option)

      VALUES ('$participant_id','$question_id','$answer_text','$answer_option')");
share|improve this answer
    
again same how will be response_id inserted –  user1619187 Aug 28 '12 at 9:07
    
there is also respone_id in table how to insert that also or that will be automatically inserted –  user1619187 Aug 28 '12 at 9:11
    
@user1619187 response_id is auto_increment field. It will update automatically with inserting new row. Try to check mysql_error($con) after mysql_query. –  Justin John Aug 28 '12 at 9:14
    
so why it is only inserting one record and may wirte mysql_error($con) a –  user1619187 Aug 28 '12 at 9:16
    
@user1619187 : First, I try it man :-). –  Justin John Aug 28 '12 at 9:17

hy as you made the id field auto incremented don't insert it vie your INSERT query . write the qurey as INSERT INTO survey_question_responses (participant_id,question_id,answer_text,answer_option) VALUES ('$participant_id','$question_id','$answer_text','$answer_option')

You should also explain or send the structure of your table.

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